I have two variables called count1 and count7
count7=0
count7=$(($count7 + $count1))
This shows an error "expression is not complete; more token required".
How should I add the two variables?
What is count1 set to? If it is not set, it looks like the empty string - and that would lead to an invalid expression. Which shell are you using?
In Bash 3.x on MacOS X 10.7.1:
$ count7=0
$ count7=$(($count7 + $count1))
-sh: 0 + : syntax error: operand expected (error token is " ")
$ count1=2
$ count7=$(($count7 + $count1))
$ echo $count7
2
$
You could also use ${count1:-0} to add 0 if $count1 is unset.
answered Aug 30 '11 at 15:45
var=$((count7 + count1))
Arithmetic in bash uses $((...)) syntax.
You do not need to $ symbol within the $(( ))
In ksh ,bash ,sh:
$ count7=0
$ count1=5
$
$ (( count7 += count1 ))
$ echo $count7
$ 5
answered Jun 4 '12 at 7:39
You can do this as well. Can be faster for quick calculations:
echo $[2+2]
Here's a simple example to add two variables:
var1=4
var2=3
let var3=$var1+$var2
echo $var3
the above script may not run in ksh. you have to use the 'let' opparand to assing the value and then echo it.
val1=4
val2=3
let val3=$val1+$val2
echo $val3
echo "$x"
x=10
echo "$y"`enter code here`
y=10
echo $[$x+$y]
Answer: 20
I don't have a unix system under my hands, but try this:
count7=$((${count7} + ${count1}))
Or maybe you have a shell that doesn't support this expression.
I think bash does support it, but sh doesn't.
EDIT: There is another syntax, try:
count7=`expr $count7 + $count1`
read num1
read num2
sum=`expr $num1 + $num2`
echo $sum
count1set to? If it is not set, it looks like the empty string - and that would lead to an invalid expression. Which shell are you using? – Jonathan Leffler Aug 30 '11 at 15:43$count1is not set to what you think it is set to. – Jonathan Leffler Aug 30 '11 at 16:13